Crack in a Bimaterial Functionally Graded Multilayered Media

S. Muju
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Abstract

The macroscopically anisotropic homogenization of a multilayered media implicitly assumes that the spatial wavelength of material inhomogeneity is smaller than the macroscopic quantity of interest and hence, is a reasonable approximation of the bulk behavior. However, close to the crack tip, gradients in field quantities are strongly influenced by the local heterogeneity, which the isotropic or anisotropic homogenization fails to capture. The present work addresses the issues related to the influence of material inhomogeneity on local crack tip driving force. It is shown that to the first order, the effect of moduli inhomogeneity, residual stresses and inelastic strains on crack tip stress intensity factor are superposable. Detailed analytical model is developed for quantifying the effect of moduli inhomogeneity for the case of bimaterial multilayered media with functional interfaces, i.e., compositionally graded finite thickness interfaces. This method provides an efficient means to study thermoelastic crack problems in complex heterogeneous media, alleviating the numerical or analytical difficulties associated with the traditional methods. The results show that the material inhomogeneity plays a significant role in effecting the crack tip driving force.
双材料功能梯度多层介质中的裂纹
多层介质的宏观各向异性均质性隐含地假设材料不均匀性的空间波长小于所关注的宏观量,因此是对体行为的合理近似。然而,在裂纹尖端附近,场量的梯度受到局部非均质性的强烈影响,而各向同性或各向异性均质化无法捕捉到这种非均质性。本文研究了材料不均匀性对局部裂纹尖端驱动力的影响。结果表明,模量不均匀性、残余应力和非弹性应变对裂纹尖端应力强度因子的影响在一阶上是叠加的。针对具有功能界面的双材料多层介质,即成分梯度有限厚度界面,建立了详细的模量不均匀性影响的定量分析模型。该方法为研究复杂非均质介质中的热弹性裂纹问题提供了一种有效的手段,减轻了传统方法在数值或分析上的困难。结果表明,材料的不均匀性对裂纹尖端驱动力有显著影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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